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Smart Virtual Bass Synthesis algorithm based on music genre classification

机译:基于音乐流派分类的智能虚拟低音合成算法

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The aim of this paper is to present a novel approach to the Virtual Bass Synthesis (VBS) algorithms applied to portable computers. The proposed algorithm employed automatic music genre recognition to determine the optimum parameters for the synthesis of additional frequencies. The synthesis was carried out using the non-linear device (NLD) and phase vocoder (PV) methods depending on the music excerpt genre. Classification of musical genres was performed utilizing the k-Nearest Neighbor algorithm and the extracted MPEG 7-based feature vectors. To confirm the relationship between the presented music excerpt genre and the listener's preferences, subjective tests were carried out. The pairwise comparison test was performed. Test material consisted of 18 pair samples belonging to six music genres: classical, pop, rock, rap, jazz, electronic. For comparison purposes music samples were prepared with the benchmark MaxxBass system and the Smart VBS algorithm proposed by the authors. On the basis of the listeners' opinions statistical tests were carried out to confirm the validity of adjusting low frequency synthesis settings according to the music content of audio files.
机译:本文的目的是提出一种应用于便携式计算机的虚拟低音合成(VBS)算法的新颖方法。所提出的算法采用自动音乐流派识别来确定用于合成其他频率的最佳参数。根据音乐摘录类型,使用非线性设备(NLD)和相位声码器(PV)方法进行合成。音乐种类的分类是利用k最近邻算法和提取的基于MPEG 7的特征向量进行的。为了确认所呈现的音乐摘录类型与听众的喜好之间的关系,进行了主观测试。进行成对比较测试。测试材料包括18对样本,分别属于六种音乐流派:古典,流行,摇滚,说唱,爵士,电子。为了进行比较,使用基准MaxxBass系统和作者提出的Smart VBS算法准备了音乐样本。根据听众的意见,进行了统计测试,以确认根据音频文件的音乐内容调整低频合成设置的有效性。

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